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Across multiple AAV capsids and independent production runs, the optimized process reproducibly increased crude harvest titers by approximately 10- to 33-fold relative to the standard process, while maintaining key vector quality attributes.
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A high manufacturing cost of goods (CoG) remains a critical barrier to the broad clinical adoption of gene therapies and is driven in part by limited productivity in adeno-associated virus (AAV) manufacturing. Here, we report an optimized AAV production process developed to markedly increase upstream titers while preserving vector quality and potency. The process combines a redesigned plasmid system, an optimized plasmid ratio, and a novel synthetic transfection reagent and was benchmarked against a conventional triple-plasmid/PEI MAX workflow. Across multiple AAV capsids and independent production runs, the optimized process reproducibly increased crude harvest titers by approximately 10- to 33-fold relative to the standard process, while maintaining key vector quality attributes. Notably, within the detection limits of the assay, rcAAV was undetectable at 1 × 1010 vg input with the optimized process, whereas the conventional triple-plasmid (with native Rep-Cap sequence)/PEI MAX workflow remained rcAAV-positive under identical conditions. Importantly, the in vivo potency was comparable to that of vectors produced by the conventional process. These results position our optimized AAV production process as a promising strategy to materially reduce AAV manufacturing CoG per patient.
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@article{Hu2026Combined,
title = {Combined Plasmid Redesign and Transfection Optimization Significantly Increases Upstream AAV Titers While Maintaining Vector Quality and In Vivo Potency},
author = {Shiliang Hu and Yinxing Chen and Carmen Wu and Wilhad Hans Reuter and June Deng and Nannan Jia and Noel Walsh and Amy Bastille and Thomas M. Edwards Edwards and Matthias Hebben and Nelson Chau and Jing Liao},
journal = {Microorganisms},
year = {2026},
doi = {10.3390/microorganisms14081857},
url = {https://doi.org/10.3390/microorganisms14081857}
}
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